CN117759382A - Hydrogen energy type multifunctional combined cycle steam power device - Google Patents

Hydrogen energy type multifunctional combined cycle steam power device Download PDF

Info

Publication number
CN117759382A
CN117759382A CN202311694568.3A CN202311694568A CN117759382A CN 117759382 A CN117759382 A CN 117759382A CN 202311694568 A CN202311694568 A CN 202311694568A CN 117759382 A CN117759382 A CN 117759382A
Authority
CN
China
Prior art keywords
communicated
steam
compressor
channel
evaporator
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
CN202311694568.3A
Other languages
Chinese (zh)
Inventor
李华玉
李鸿瑞
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Individual
Original Assignee
Individual
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Individual filed Critical Individual
Publication of CN117759382A publication Critical patent/CN117759382A/en
Pending legal-status Critical Current

Links

Abstract

The invention provides a hydrogen energy type multifunctional co-carried combined cycle steam power device, and belongs to the technical field of thermodynamics and thermal dynamics. The outside has hydrogen channel to communicate with combustion chamber, the outside has oxygen channel to communicate with combustion chamber, the evaporator has steam channel to communicate with solar energy heat collecting system after the condenser is communicated with evaporator through the booster pump, the compressor has steam channel to communicate with solar energy heat collecting system, the solar energy heat collecting system has steam channel to communicate with combustion chamber through second compressor and nuclear reactor, the combustion chamber has steam channel to communicate with steam turbine, the steam turbine has low-pressure steam channel to divide into two-the first way to communicate with compressor and the second way to communicate with condenser after the evaporator is communicated with low-pressure steam channel, the condenser has condensed water pipeline to communicate with outside; the condenser is provided with a cooling medium channel which is communicated with the outside, and the steam turbine is connected with the compressor and the second compressor and transmits power to form the hydrogen energy type multifunctional portable combined cycle steam power device.

Description

Hydrogen energy type multifunctional combined cycle steam power device
Technical field:
the invention belongs to the technical field of thermodynamics and thermal dynamics.
The background technology is as follows:
hydrogen fuel, nuclear energy and photo-thermal, thermal work can be realized; the same or different thermal power principles are adopted, and different system devices are utilized to pay corresponding construction cost, so that conversion of hydrogen fuel, nuclear energy or photo-thermal energy into mechanical energy is realized; obviously, it is of positive interest to try to reduce the number of thermal power devices.
The fuel has different kinds and properties, and the temperature of the fuel gas formed by the combustion of the fuel determines the heat-changing work efficiency. Hydrogen is a high-quality and high-grade fuel, and people can use pure oxygen to support combustion so as to avoid the generation and emission of any pollutant; the hydrogen combustion process is limited by factors such as working principle, working medium property, material property, equipment and the like, and has larger irreversible loss due to temperature difference.
In order to convert nuclear energy into mechanical energy as much as possible, the high-temperature gas cooled reactor is a main direction of nuclear energy utilization and development, and is limited by factors such as working principle, material performance, safety requirements and the like, and the application process of the nuclear fuel has irreversible temperature difference loss.
The solar energy forms medium-temperature/high-temperature photo-heat through a heat collection technical means, is limited by factors such as a working principle, materials, safety and the like, has insufficient power application value, and has larger heat efficiency improving space.
Based on the principle of simply, actively, safely and efficiently utilizing energy to obtain power, the invention provides a hydrogen energy type multi-energy carrying combined cycle steam power device which takes single-working-medium combined cycle as a working principle, carries hydrogen fuel, nuclear energy and photo-thermal steps simultaneously, has flexible connection between the nuclear energy and the photo-thermal steps, has reasonable flow, simple structure, high thermodynamic perfection, low construction cost and high cost performance.
The invention comprises the following steps:
the invention mainly aims to provide a hydrogen energy type multifunctional portable combined cycle steam power device, and the specific invention is described in the following items:
1. the hydrogen energy type multifunctional combined cycle steam power plant mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor and a combustion chamber; the outside is provided with a hydrogen channel which is communicated with the combustion chamber, the outside is provided with an oxygen channel which is communicated with the combustion chamber, the condenser is provided with a condensing water pipeline which is communicated with the evaporator through a booster pump, the evaporator is provided with a steam channel which is communicated with the solar heat collection system, the compressor is provided with a steam channel which is communicated with the solar heat collection system, the solar heat collection system is also provided with a steam channel which is communicated with the combustion chamber through a second compressor and a nuclear reactor, the combustion chamber is also provided with a steam channel which is communicated with a steam turbine, and the steam turbine is also provided with a low-pressure steam channel which is communicated with the evaporator and then is divided into two paths, namely, the first path is communicated with the compressor and the second path is communicated with the condenser, and the condenser is also provided with a condensing water pipeline which is communicated with the outside; the condenser is also provided with a cooling medium channel which is communicated with the outside, the steam turbine is connected with the compressor and the second compressor and transmits power to form a hydrogen energy type multifunctional portable combined cycle steam power device; wherein, or steam turbine connects compressor, booster pump and second compressor and transmits power.
2. The hydrogen energy type multifunctional combined cycle steam power device mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor, a combustion chamber and a heat regenerator; the outside is provided with a hydrogen channel which is communicated with the combustion chamber, the outside is provided with an oxygen channel which is communicated with the combustion chamber, the condenser is provided with a condensate water pipeline which is communicated with the evaporator through a booster pump, the evaporator is provided with a steam channel which is communicated with the solar heat collection system, the compressor is provided with a steam channel which is communicated with the solar heat collection system, the solar heat collection system is provided with a steam channel which is communicated with the combustion chamber through a second compressor, a regenerator and a nuclear reactor, the combustion chamber is provided with a steam channel which is communicated with a steam turbine, the steam turbine is provided with a low-pressure steam channel which is communicated with the evaporator through the regenerator and then is divided into two paths, namely, the first path is communicated with the compressor and the second path is communicated with the condenser, and the condenser is provided with a condensate water pipeline which is communicated with the outside; the condenser is also provided with a cooling medium channel which is communicated with the outside, the steam turbine is connected with the compressor and the second compressor and transmits power to form a hydrogen energy type multifunctional portable combined cycle steam power device; wherein, or steam turbine connects compressor, booster pump and second compressor and transmits power.
3. The hydrogen energy type multifunctional combined cycle steam power device mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor, a combustion chamber and a heat regenerator; the outside has hydrogen channel to communicate with combustion chamber, the outside has oxygen channel to communicate with combustion chamber, the condenser has condensed water pipeline to communicate with evaporator through booster pump, the evaporator has steam channel to communicate with solar energy collecting system again, the compressor has steam channel to communicate with solar energy collecting system, the solar energy collecting system has steam channel to communicate with second compressor, the second compressor has steam channel to communicate with oneself through the regenerator again after the second compressor has steam channel to communicate with second compressor, the second compressor has steam channel to communicate with combustion chamber through the nuclear reactor, the combustion chamber has steam channel to communicate with steam turbine, the steam turbine has low-pressure steam channel to divide into two ways after communicating with evaporator through the regenerator-the first way communicates with compressor and the second way communicates with condenser, the condenser has condensed water pipeline to communicate with outside; the condenser is also provided with a cooling medium channel which is communicated with the outside, the steam turbine is connected with the compressor and the second compressor and transmits power to form a hydrogen energy type multifunctional portable combined cycle steam power device; wherein, or steam turbine connects compressor, booster pump and second compressor and transmits power.
4. The hydrogen energy type multifunctional combined cycle steam power device mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor, a combustion chamber and a heat regenerator; the outside is provided with a hydrogen channel which is communicated with the combustion chamber, the outside is provided with an oxygen channel which is communicated with the combustion chamber, the condenser is provided with a condensate water pipeline which is communicated with the evaporator through a booster pump, the evaporator is provided with a steam channel which is communicated with the solar heat collection system, the compressor is provided with a steam channel which is communicated with the solar heat collection system, the solar heat collection system is provided with a steam channel which is communicated with the combustion chamber through a heat regenerator, a second compressor and a nuclear reactor, the combustion chamber is provided with a steam channel which is communicated with a steam turbine, the steam turbine is provided with a low-pressure steam channel which is communicated with the evaporator through the heat regenerator and then is divided into two paths, namely, the first path is communicated with the compressor and the second path is communicated with the condenser, and the condenser is provided with a condensate water pipeline which is communicated with the outside; the condenser is also provided with a cooling medium channel which is communicated with the outside, the steam turbine is connected with the compressor and the second compressor and transmits power to form a hydrogen energy type multifunctional portable combined cycle steam power device; wherein, or steam turbine connects compressor, booster pump and second compressor and transmits power.
5. The hydrogen energy type multifunctional combined cycle steam power device mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor, a combustion chamber, a heat regenerator and a second heat regenerator; the outside is provided with a hydrogen channel which is communicated with the combustion chamber, the outside is provided with an oxygen channel which is communicated with the combustion chamber, the condenser is provided with a condensate water pipeline which is communicated with the evaporator through a booster pump, then the evaporator is provided with a steam channel which is communicated with the solar heat collection system, the compressor is provided with a steam channel which is communicated with the solar heat collection system, the solar heat collection system is provided with a steam channel which is communicated with the combustion chamber through a heat regenerator, a second compressor, a second heat regenerator and a nuclear reactor, the combustion chamber is provided with a steam channel which is communicated with a steam turbine, and the steam turbine is provided with a low-pressure steam channel which is divided into two paths after being communicated with the evaporator through the second heat regenerator and the heat regenerator, wherein the first path is communicated with the compressor, the second path is communicated with the condenser, and the condensate water pipeline is communicated with the outside; the condenser is also provided with a cooling medium channel which is communicated with the outside, the steam turbine is connected with the compressor and the second compressor and transmits power to form a hydrogen energy type multifunctional portable combined cycle steam power device; wherein, or steam turbine connects compressor, booster pump and second compressor and transmits power.
6. The hydrogen energy type multifunctional combined cycle steam power device is characterized in that in any one of the hydrogen energy type multifunctional combined cycle steam power devices in the 2-4 th aspect, a low-pressure steam channel of a steam turbine is communicated with an evaporator through a heat regenerator, and the low-pressure steam channel of the steam turbine is communicated with the evaporator after the steam channel of the steam turbine is communicated with the steam generator through the heat regenerator, so that the hydrogen energy type multifunctional combined cycle steam power device is formed.
7. The hydrogen energy type multifunctional combined cycle steam power device is characterized in that in the 5 th hydrogen energy type multifunctional combined cycle steam power device, a low-pressure steam channel of a steam turbine is communicated with an evaporator through a second heat regenerator and a heat regenerator, and the steam turbine is adjusted to be communicated with the evaporator through the heat regenerator after the steam channel of the steam turbine is communicated with the steam turbine through the second heat regenerator, so that the hydrogen energy type multifunctional combined cycle steam power device is formed.
8. The hydrogen energy type multifunctional combined cycle steam power plant mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor and a combustion chamber; the outside is provided with a hydrogen channel which is communicated with the combustion chamber, the outside is provided with an oxygen channel which is communicated with the combustion chamber, the condenser is provided with a condensed water pipeline which is communicated with the evaporator through a booster pump, the evaporator is further provided with a steam channel which is communicated with the nuclear reactor through a solar heat collecting system and a second compressor, the compressor is provided with a steam channel which is communicated with the nuclear reactor, the nuclear reactor is also provided with a steam channel which is communicated with the combustion chamber, the combustion chamber is also provided with a steam channel which is communicated with a steam turbine, and the steam turbine is also provided with a low-pressure steam channel which is communicated with the evaporator and then is divided into two paths, namely a first path which is communicated with the compressor and a second path which is communicated with the condenser, and the condenser is also provided with a condensed water pipeline which is communicated with the outside; the condenser is also provided with a cooling medium channel which is communicated with the outside, the steam turbine is connected with the compressor and the second compressor and transmits power to form a hydrogen energy type multifunctional portable combined cycle steam power device; wherein, or steam turbine connects compressor, booster pump and second compressor and transmits power.
9. The hydrogen energy type multifunctional combined cycle steam power plant mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor and a combustion chamber; the outside is provided with a hydrogen channel which is communicated with the combustion chamber, the outside is provided with an oxygen channel which is communicated with the combustion chamber, the condenser is provided with a condensing water pipeline which is communicated with the evaporator through a booster pump, then the evaporator is provided with a steam channel which is communicated with the solar heat collecting system, the solar heat collecting system is also provided with a steam channel which is communicated with the turbine through an intermediate port, the compressor is provided with a steam channel which is communicated with the combustion chamber through the solar heat collecting system, a second compressor and a nuclear reactor, the combustion chamber is also provided with a steam channel which is communicated with the turbine, and the turbine is also provided with a low-pressure steam channel which is communicated with the evaporator and then is divided into two paths, namely, the first path is communicated with the compressor and the second path is communicated with the condenser, and the condenser is also provided with a condensing water pipeline which is communicated with the outside; the condenser is also provided with a cooling medium channel which is communicated with the outside, the steam turbine is connected with the compressor and the second compressor and transmits power to form a hydrogen energy type multifunctional portable combined cycle steam power device; wherein, or steam turbine connects compressor, booster pump and second compressor and transmits power.
10. The hydrogen energy type multifunctional combined cycle steam power device mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor, a combustion chamber and a second steam turbine; the outside has hydrogen channel to communicate with combustion chamber, the outside has oxygen channel to communicate with combustion chamber, the condenser has condenser water pipeline to communicate with evaporator through booster pump, the evaporator has steam channel to communicate with second steam turbine again, the second steam turbine has low-pressure steam channel to communicate with evaporator, the compressor has steam channel to communicate with combustion chamber through solar energy heat collecting system, second compressor and nuclear reactor, the combustion chamber has steam channel to communicate with steam turbine, the steam turbine has low-pressure steam channel to communicate with evaporator, the evaporator has low-pressure steam channel to communicate with compressor and condenser separately, the condenser has condensed water pipeline to communicate with outside; the condenser is also provided with a cooling medium channel which is communicated with the outside, the steam turbine is connected with the compressor and the second compressor and transmits power to form a hydrogen energy type multifunctional portable combined cycle steam power device; wherein, or steam turbine connects compressor, booster pump and second compressor and transmits power.
11. The hydrogen energy type multifunctional combined cycle steam power plant is characterized in that in any one of the hydrogen energy type multifunctional combined cycle steam power plants in the 1-10 th aspect, a combustion chamber with a steam channel is communicated with a steam turbine, the steam turbine and a reheat steam channel are communicated with the combustion chamber through a nuclear reactor after the combustion chamber with the steam channel is adjusted to be communicated with the steam turbine, and the hydrogen energy type multifunctional combined cycle steam power plant is formed.
12. The hydrogen energy type multifunctional combined cycle steam power plant is characterized in that in any one of the hydrogen energy type multifunctional combined cycle steam power plants in the 1-10 th aspect, a steam channel in a combustion chamber is communicated with a steam turbine, and after the steam channel in the combustion chamber is communicated with the steam turbine, the steam turbine is also communicated with the steam turbine through the combustion chamber, and then the reheat steam channel in the steam turbine is communicated with the steam turbine, so that the hydrogen energy type multifunctional combined cycle steam power plant with the same function is formed.
13. The hydrogen energy type multifunctional combined cycle steam power plant is characterized in that in any one of the hydrogen energy type multifunctional combined cycle steam power plants in the 1-10 th aspect, a steam channel in a combustion chamber is communicated with a steam turbine, and the steam turbine and a reheat steam channel are communicated with the steam turbine through a nuclear reactor and the combustion chamber after the steam channel in the combustion chamber is communicated with the steam turbine, so that the hydrogen energy type multifunctional combined cycle steam power plant is formed.
14. The hydrogen energy type multifunctional combined cycle steam power device is characterized in that a second booster pump and a low-temperature heat regenerator are added in any one of the hydrogen energy type multifunctional combined cycle steam power devices in 1-13, the condenser with a condensate water pipeline is communicated with the booster pump and is adjusted to be communicated with the low-temperature heat regenerator through the second booster pump, a steam extraction channel is additionally arranged in a compressor to be communicated with the low-temperature heat regenerator, and the low-temperature heat regenerator is communicated with the booster pump through a recondensed water pipeline, so that the hydrogen energy type multifunctional combined cycle steam power device is formed.
15. A hydrogen energy type multifunctional combined cycle steam power device is characterized in that in any one of the hydrogen energy type multifunctional combined cycle steam power devices in the 1 st and the 6 th, a newly-added evaporator and a newly-added diffuser pipe are added, a low-pressure steam passage of a steam turbine is communicated with the evaporator and is adjusted to be communicated with the newly-added evaporator through the evaporator, the low-pressure steam passage of the steam turbine is respectively communicated with a compressor and a condenser, the newly-added evaporator is respectively communicated with the compressor and the condenser, a condenser condensed water pipeline is adjusted to be communicated with the condenser through a booster pump and the newly-added evaporator through the booster pump, and then the newly-added evaporator is communicated with the evaporator through the newly-added diffuser pipe, so that the hydrogen energy type multifunctional combined cycle steam power device is formed.
16. The hydrogen energy type multifunctional combined cycle steam power device is characterized in that a new evaporator and a new diffusion pipe are added in any one of the hydrogen energy type multifunctional combined cycle steam power devices in the 2 th to the 5 th and the 7 th, the low-pressure steam channel of the regenerator is communicated with the evaporator and is adjusted to be communicated with the new evaporator through the evaporator, the low-pressure steam channel of the evaporator is respectively communicated with the compressor and the condenser, the low-pressure steam channel of the new evaporator is respectively communicated with the compressor and the condenser, the condenser condensed water pipeline is adjusted to be communicated with the new evaporator through the booster pump after the condenser condensed water pipeline is communicated with the new evaporator, and the new evaporator is further communicated with the evaporator through the new diffusion pipe, so that the hydrogen energy type multifunctional combined cycle steam power device is formed.
17. The hydrogen energy type multifunctional combined cycle steam power plant is characterized in that in any one of the hydrogen energy type multifunctional combined cycle steam power plants in 1-16, an expansion speed increaser is added to replace a steam turbine, a dual-energy compressor is added to replace a compressor, a diffuser pipe is added to replace a booster pump, and the hydrogen energy type multifunctional combined cycle steam power plant is formed.
18. The hydrogen energy type multi-energy carrying combined cycle steam power plant is characterized in that in any one of the hydrogen energy type multi-energy carrying combined cycle steam power plants in the 1 st to 16 th, an expansion speed increaser is added to replace a steam turbine, a dual-energy compressor is added to replace a compressor, a diffuser pipe is added to replace a booster pump, a second dual-energy compressor is added to replace the second compressor, and the hydrogen energy type multi-energy carrying combined cycle steam power plant is formed.
Description of the drawings:
FIG. 1 is a schematic thermodynamic system diagram of a hydrogen-energy type multi-energy portable combined cycle steam power plant according to the present invention.
FIG. 2 is a schematic thermodynamic system diagram of a hydrogen-energy type multi-energy portable combined cycle steam power plant according to the present invention.
FIG. 3 is a schematic thermodynamic system diagram of a hydrogen energy type multi-energy portable combined cycle steam power plant according to the present invention.
FIG. 4 is a schematic thermodynamic system diagram of a hydrogen-energy type multi-energy portable combined cycle steam power plant according to the present invention.
FIG. 5 is a schematic thermodynamic system diagram of a hydrogen energy type multi-energy portable combined cycle steam power plant according to the present invention.
FIG. 6 is a schematic thermodynamic system diagram of a hydrogen energy type multi-energy portable combined cycle steam power plant according to the present invention.
FIG. 7 is a schematic thermodynamic system diagram of a hydrogen-energy type multi-energy portable combined cycle steam power plant according to the present invention.
FIG. 8 is a schematic thermodynamic system diagram of a hydrogen-energy type multi-energy portable combined cycle steam power plant according to the present invention.
FIG. 9 is a schematic thermodynamic system diagram of a hydrogen-energy type multi-energy portable combined cycle steam power plant according to the present invention.
FIG. 10 is a schematic diagram of a 10 th principle thermodynamic system of a hydrogen energy type multi-energy portable combined cycle steam power plant according to the present invention.
FIG. 11 is a schematic thermodynamic system diagram of a hydrogen-energy type multi-energy portable combined cycle steam power plant according to the present invention.
FIG. 12 is a schematic view of a 12 th principle thermodynamic system of a hydrogen energy type multi-energy portable combined cycle steam power plant according to the present invention.
FIG. 13 is a schematic thermodynamic system diagram of a hydrogen-energy type multi-energy portable combined cycle steam power plant 13 according to the present invention.
FIG. 14 is a schematic thermodynamic system diagram of a hydrogen-energy type multi-energy portable combined cycle steam power plant according to the present invention.
FIG. 15 is a schematic thermodynamic system diagram of a hydrogen-energy type multi-energy portable combined cycle steam power plant according to the present invention.
In the figure, a 1-turbine, a 2-compressor, a 3-booster pump, a 4-condenser, a 5-evaporator, a 6-solar heat collection system, a 7-second compressor, an 8-nuclear reactor, a 9-combustion chamber, a 10-regenerator, an 11-second regenerator, a 12-second turbine, a 13-second booster pump, a 14-low temperature regenerator, a 15-expansion speed increaser, a 16-dual-energy compressor, a 17-diffuser pipe, an 18-second dual-energy compressor, an A-newly added evaporator and a B-newly added diffuser pipe.
(1) Regarding nuclear energy and nuclear reactors, the following brief description is given here:
the nuclear reactor in the present application is a heating device for directly or indirectly providing a high-temperature heat load to a working medium by using nuclear energy, and generally comprises two cases:
(1) the nuclear fuel is directly supplied to the working medium flowing through the nuclear reactor by the heat energy released by the nuclear reaction.
(2) The heat energy released by the nuclear reaction of the nuclear fuel is first supplied to a circuit cooling medium and then supplied by the circuit cooling medium to the working medium flowing through the nuclear reactor through a heat exchanger, which means that the heat exchanger is considered as an integral part of the nuclear reactor 8.
(2) Regarding the photo-thermal and solar heat collection system, the following brief description is given here:
(1) the solar heat collection system in the application of the invention is also called a solar heat supply system, which is a heat supply system for converting solar radiation energy into medium temperature/high temperature heat energy (photo-thermal for short) by using a heat collector and can be used for providing driving heat load for a thermodynamic cycle system; it is mainly composed of heat collector and related necessary auxiliary facilities.
(2) It is apparent that solar energy collection systems in a broader sense include various systems that employ various means and devices to convert solar energy into thermal energy at different temperatures.
(3) Types of solar energy collection systems include, but are not limited to: one is a concentrating solar heat collection system, and currently, three systems, namely a groove type system, a tower type system and a butterfly type system, are mainly used; the second is a non-condensing solar heat collecting system, and a solar pond, a solar chimney and the like are available in the prior art.
(4) There are two main types of heat supply modes of solar heat collection systems at present: firstly, medium-temperature/high-temperature heat energy converted from solar energy is directly supplied to a circulating working medium flowing through a solar heat collection system; and secondly, medium-temperature/high-temperature heat energy converted from solar energy is firstly provided for a working medium of a self-circulation loop, and then the working medium is provided for a circulation working medium flowing through a solar heat collection system through a heat exchanger.
The specific embodiment is as follows:
it is to be noted that the description of the structure and the flow is not repeated if necessary; obvious procedures are not described. The invention is described in detail below with reference to the drawings and examples.
The hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 1 is realized by the following steps:
(1) Structurally, it mainly consists of a turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor and a combustion chamber; the outside is provided with a hydrogen channel which is communicated with a combustion chamber 9, the outside is also provided with an oxygen channel which is communicated with the combustion chamber 9, a condenser 4 is provided with a condensed water pipeline which is communicated with the evaporator 5 through a booster pump 3, then the evaporator 5 is further provided with a steam channel which is communicated with a solar heat collection system 6, a compressor 2 is provided with a steam channel which is communicated with the solar heat collection system 6, the solar heat collection system 6 is also provided with a steam channel which is communicated with the combustion chamber 9 through a second compressor 7 and a nuclear reactor 8, the combustion chamber 9 is also provided with a steam channel which is communicated with a steam turbine 1, the steam turbine 1 is also provided with a low-pressure steam channel which is communicated with the evaporator 5 and then is divided into two paths, namely, the first path is communicated with the compressor 2 and the second path is communicated with the condenser 4, and the condenser 4 is also provided with a condensed water pipeline which is communicated with the outside; the condenser 4 is also provided with a cooling medium passage communicated with the outside, and the steam turbine 1 is connected with the compressor 2 and the second compressor 7 and transmits power.
(2) In the flow, hydrogen and oxygen with higher external pressure enter a combustion chamber 9 for combustion to generate high-temperature high-pressure steam; one path of condensed water of the condenser 4 is boosted by the booster pump 3, is subjected to heat absorption, temperature rise and vaporization by the evaporator 5, and then enters the solar heat collection system 6 to absorb heat, and the steam discharged by the compressor 2 enters the solar heat collection system 6 to absorb heat and raise temperature; steam discharged by the solar heat collection system 6 is boosted and heated through the second compressor 7, absorbs heat and heats through the nuclear reactor 8, and then enters the combustion chamber 9 to be mixed with high-temperature steam, absorbs heat and heats; the steam discharged by the combustion chamber 9 flows through the steam turbine 1 to reduce pressure and work, the low-pressure steam discharged by the steam turbine 1 flows through the evaporator 5 to release heat and reduce temperature, and then the low-pressure steam is divided into two paths, wherein the first path enters the compressor 2 to raise pressure and heat, and the second path enters the condenser 4 to release heat and condense; the condensed water of the condenser 4 is divided into two paths, wherein the first path is discharged to the outside, and the second path is provided for the booster pump 3; solar energy provides a driving heat load through the solar heat collection system 6, nuclear fuel provides a driving heat load through the nuclear reactor 8, hydrogen fuel provides a driving heat load through the combustion chamber 9, and a cooling medium takes away a low-temperature heat load through the condenser 4; the work output by the steam turbine 1 is provided for the compressor 2, the second compressor 7 and external power, or the work output by the steam turbine 1 is provided for the compressor 2, the booster pump 3, the second compressor 7 and external power, so that the hydrogen energy type multifunctional combined cycle steam power device is formed.
The hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 2 is realized by the following steps:
(1) Structurally, the device mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor, a combustion chamber and a heat regenerator; the outside is provided with a hydrogen channel which is communicated with a combustion chamber 9, the outside is also provided with an oxygen channel which is communicated with the combustion chamber 9, a condenser 4 is provided with a condensed water pipeline which is communicated with the evaporator 5 through a booster pump 3, then the evaporator 5 is further provided with a steam channel which is communicated with a solar heat collection system 6, the compressor 2 is provided with a steam channel which is communicated with the solar heat collection system 6, the solar heat collection system 6 is further provided with a steam channel which is communicated with the combustion chamber 9 through a second compressor 7, a regenerator 10 and a nuclear reactor 8, the combustion chamber 9 is further provided with a steam channel which is communicated with a steam turbine 1, the steam turbine 1 is further provided with a low-pressure steam channel which is divided into two paths after being communicated with the evaporator 5 through the regenerator 10, namely the first path is communicated with the compressor 2 and the second path is communicated with the condenser 4, and the condenser 4 is further provided with a condensed water pipeline which is communicated with the outside; the condenser 4 is also provided with a cooling medium passage communicated with the outside, and the steam turbine 1 is connected with the compressor 2 and the second compressor 7 and transmits power.
(2) In flow, compared with the hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 1, the difference is that: steam discharged by the second compressor 7 flows through the heat regenerator 10 and the nuclear reactor 8 to absorb heat gradually and raise temperature, and then enters the combustion chamber 9 to be mixed with high-temperature steam, absorb heat and raise temperature; the low-pressure steam discharged by the steam turbine 1 is gradually released heat and cooled through the heat regenerator 10 and the evaporator 5, and then is divided into two paths, wherein the first path enters the compressor 2 to be boosted and heated, and the second path enters the condenser 4 to release heat and condense, so that the hydrogen energy type multifunctional combined cycle steam power device with the same energy is formed.
The hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 3 is realized by the following steps:
(1) Structurally, the device mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor, a combustion chamber and a heat regenerator; the outside is provided with a hydrogen channel and a combustion chamber 9 which are communicated, the outside is also provided with an oxygen channel and a combustion chamber 9 which are communicated, after the condenser 4 is provided with a condensed water pipeline which is communicated with the evaporator 5 through the booster pump 3, the evaporator 5 is further provided with a steam channel which is communicated with the solar heat collecting system 6, the compressor 2 is provided with a steam channel which is communicated with the solar heat collecting system 6, after the solar heat collecting system 6 is further provided with a steam channel which is communicated with the second compressor 7, the second compressor 7 is further provided with a steam channel which is communicated with the self through the regenerator 10, the second compressor 7 is further provided with a steam channel which is communicated with the combustion chamber 9 through the nuclear reactor 8, the combustion chamber 9 is further provided with a steam channel which is communicated with the steam turbine 1, the steam turbine 1 is further provided with a low-pressure steam channel which is divided into two paths after being communicated with the compressor 2 and the second path which is communicated with the condenser 4 through the regenerator 10, and the condenser 4 is further provided with a condensed path which is communicated with the outside; the condenser 4 is also provided with a cooling medium passage communicated with the outside, and the steam turbine 1 is connected with the compressor 2 and the second compressor 7 and transmits power.
(2) In flow, compared with the hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 1, the difference is that: steam discharged by the solar heat collection system 6 enters the second compressor 7 to be boosted and heated, and flows through the regenerator 10 to absorb heat and heat to be heated to a certain extent, enters the second compressor 7 to be boosted and heated continuously, and then enters the nuclear reactor 8 to absorb heat and heat to be heated; the low-pressure steam discharged by the steam turbine 1 flows through the heat regenerator 10 and the evaporator 5 to release heat and cool gradually, and then enters the compressor 2 to raise the pressure and heat and enter the condenser 4 to release heat and condense respectively, so that the hydrogen energy type multifunctional portable combined cycle steam power device is formed.
The hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 4 is realized by the following steps:
(1) Structurally, the device mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor, a combustion chamber and a heat regenerator; the outside is provided with a hydrogen channel and a combustion chamber 9 which are communicated, the outside is also provided with an oxygen channel and a combustion chamber 9 which are communicated, after the condenser 4 is provided with a condensed water pipeline which is communicated with the evaporator 5 through the booster pump 3, the evaporator 5 is further provided with a steam channel which is communicated with the solar heat collection system 6, the compressor 2 is provided with a steam channel which is communicated with the solar heat collection system 6, the solar heat collection system 6 is also provided with a steam channel which is communicated with the combustion chamber 9 through the regenerator 10, the second compressor 7 and the nuclear reactor 8, the combustion chamber 9 is also provided with a steam channel which is communicated with the steam turbine 1, the steam turbine 1 is also provided with a low-pressure steam channel which is divided into two paths after being communicated with the evaporator 5 through the regenerator 10, namely the first path is communicated with the compressor 2 and the second path is communicated with the condenser 4, and the condenser 4 is also provided with a condensed water pipeline which is communicated with the outside; the condenser 4 is also provided with a cooling medium passage communicated with the outside, and the steam turbine 1 is connected with the compressor 2 and the second compressor 7 and transmits power.
(2) In flow, compared with the hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 1, the difference is that: steam discharged by the solar heat collection system 6 flows through the heat regenerator 10 to absorb heat and raise temperature, and then enters the second compressor 7 to raise pressure and raise temperature; the low-pressure steam discharged by the steam turbine 1 is gradually released heat and cooled through the heat regenerator 10 and the evaporator 5, and then is divided into two paths, wherein the first path enters the compressor 2 to be boosted and heated, and the second path enters the condenser 4 to release heat and condense, so that the hydrogen energy type multifunctional combined cycle steam power device with the same energy is formed.
The hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 5 is realized by the following steps:
(1) Structurally, the device mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor, a combustion chamber, a heat regenerator and a second heat regenerator; the outside is provided with a hydrogen channel and a combustion chamber 9 which are communicated, the outside is also provided with an oxygen channel and a combustion chamber 9 which are communicated, after the condenser 4 is provided with a condensed water pipeline which is communicated with the evaporator 5 through the booster pump 3, the evaporator 5 is further provided with a steam channel which is communicated with the solar heat collecting system 6, the compressor 2 is provided with a steam channel which is communicated with the solar heat collecting system 6, the solar heat collecting system 6 is also provided with a steam channel which is communicated with the combustion chamber 9 through the heat regenerator 10, the second compressor 7, the second heat regenerator 11 and the nuclear reactor 8, the combustion chamber 9 is also provided with a steam channel which is communicated with the steam turbine 1, the steam turbine 1 is also provided with a low-pressure steam channel which is divided into two paths after being communicated with the evaporator 5 through the second heat regenerator 11 and the heat regenerator 10, the first path is communicated with the compressor 2 and the second path is communicated with the condenser 4, and the condenser 4 is also provided with a condensed water pipeline which is communicated with the outside; the condenser 4 is also provided with a cooling medium passage communicated with the outside, and the steam turbine 1 is connected with the compressor 2 and the second compressor 7 and transmits power.
(2) In flow, compared with the hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 1, the difference is that: steam discharged by the solar heat collection system 6 is subjected to heat absorption and temperature rise through the heat regenerator 10, is subjected to pressure rise and temperature rise through the second compressor 7, is subjected to heat absorption and temperature rise through the second heat regenerator 11, and then enters the nuclear reactor 8 to be subjected to heat absorption and temperature rise; the low-pressure steam discharged by the steam turbine 1 is gradually released heat and cooled through the second heat regenerator 11, the heat regenerator 10 and the evaporator 5, and then is divided into two paths, wherein the first path enters the compressor 2 to be boosted and heated, and the second path enters the condenser 4 to release heat and condense, so that the hydrogen energy type multifunctional portable combined cycle steam power device is formed.
The hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 6 is realized by the following steps:
(1) In the structure, in the hydrogen energy type multifunctional portable combined cycle steam power device shown in fig. 3, a low-pressure steam channel of the steam turbine 1 is communicated with the evaporator 5 through the heat regenerator 10, and the low-pressure steam channel of the steam turbine 1 is communicated with the evaporator 5 after the steam channel of the steam turbine 1 is communicated with the steam generator through the heat regenerator 10.
(2) In flow, compared with the hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 3, the difference is that: the steam discharged by the combustion chamber 9 enters the steam turbine 1 to perform decompression and work, after reaching a certain degree, the steam flows through the heat regenerator 10 to absorb heat and raise temperature, then enters the steam turbine 1 to continue decompression and work, and the low-pressure steam discharged by the steam turbine 1 is provided for the evaporator 5 to form the hydrogen energy type multifunctional combined cycle steam power device.
The hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 7 is realized by the following steps:
(1) In the structure, in the hydrogen energy type multifunctional portable combined cycle steam power device shown in fig. 5, a low-pressure steam channel of the steam turbine 1 is communicated with the evaporator 5 through the second heat regenerator 11 and the heat regenerator 10, and the low-pressure steam channel of the steam turbine 1 is communicated with the evaporator 5 through the heat regenerator 10 after the steam channel of the steam turbine 1 is communicated with the steam generator through the second heat regenerator 11.
(2) In the flow, compared with the hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 5, the difference is that: the steam discharged by the combustion chamber 9 enters the steam turbine 1 to perform decompression and work, after reaching a certain degree, the steam flows through the second heat regenerator 11 to absorb heat and raise temperature, then enters the steam turbine 1 to continue decompression and work, and the low-pressure steam discharged by the steam turbine 1 flows through the heat regenerator 10 to release heat and reduce temperature and then is supplied to the evaporator 5, so that the hydrogen energy type multifunctional co-cycle steam power plant is formed.
The hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 8 is realized by the following steps:
(1) Structurally, it mainly consists of a turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor and a combustion chamber; the outside is provided with a hydrogen channel which is communicated with a combustion chamber 9, the outside is also provided with an oxygen channel which is communicated with the combustion chamber 9, a condenser 4 is provided with a condensed water pipeline which is communicated with the evaporator 5 through a booster pump 3, then the evaporator 5 is further provided with a steam channel which is communicated with a nuclear reactor 8 through a solar heat collection system 6 and a second compressor 7, the compressor 2 is provided with a steam channel which is communicated with the nuclear reactor 8, the nuclear reactor 8 is also provided with a steam channel which is communicated with the combustion chamber 9, the combustion chamber 9 is also provided with a steam channel which is communicated with a steam turbine 1, the steam turbine 1 is also provided with a low-pressure steam channel which is communicated with the evaporator 5 and then is divided into two paths, namely, the first path is communicated with the compressor 2 and the second path is communicated with the condenser 4, and the condenser 4 is also provided with a condensed water pipeline which is communicated with the outside; the condenser 4 is also provided with a cooling medium passage communicated with the outside, and the steam turbine 1 is connected with the compressor 2 and the second compressor 7 and transmits power.
(2) In flow, compared with the hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 1, the difference is that: the second path of condensed water discharged by the condenser 4 is boosted by the booster pump 3, is absorbed by the evaporator 5 and is warmed up, partially or completely vaporized, is continuously absorbed by the solar heat collection system 6, is boosted by the second compressor 7 and is warmed up, and then enters the nuclear reactor 8 to absorb heat and warm up, and the steam discharged by the compressor 2 enters the nuclear reactor 8 to absorb heat and warm up; the low-pressure steam discharged by the steam turbine 1 respectively enters the compressor 2 for boosting and heating and enters the condenser 4 for heat release and condensation, so that the hydrogen energy type multifunctional portable combined cycle steam power device is formed.
The hydrogen energy type multi-energy co-cycle steam power plant shown in fig. 9 is realized by the following steps:
(1) Structurally, it mainly consists of a turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor and a combustion chamber; the outside is provided with a hydrogen channel which is communicated with a combustion chamber 9, the outside is also provided with an oxygen channel which is communicated with the combustion chamber 9, a condenser 4 is provided with a condensed water pipeline which is communicated with the evaporator 5 through a booster pump 3, then the evaporator 5 is further provided with a steam channel which is communicated with a solar heat collecting system 6, the solar heat collecting system 6 is also provided with a steam channel which is communicated with a steam turbine 1 through an intermediate port, a compressor 2 is provided with a steam channel which is communicated with the combustion chamber 9 through the solar heat collecting system 6, a second compressor 7 and a nuclear reactor 8, the combustion chamber 9 is also provided with a steam channel which is communicated with the steam turbine 1, the steam turbine 1 is also provided with a low-pressure steam channel which is communicated with the evaporator 5 and then is divided into two paths, namely, the first path is communicated with the compressor 2 and the second path is communicated with the condenser 4, and the condenser 4 is also provided with a condensed water pipeline which is communicated with the outside; the condenser 4 is also provided with a cooling medium passage communicated with the outside, and the steam turbine 1 is connected with the compressor 2 and the second compressor 7 and transmits power.
(2) In flow, compared with the hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 1, the difference is that: the high-pressure steam discharged by the evaporator 5 flows through the solar heat collection system 6 to absorb heat and raise temperature, and then enters the steam turbine 1 through the middle steam inlet port to reduce pressure and do work; steam discharged by the compressor 2 flows through the solar heat collection system 6 to absorb heat and raise temperature, flows through the second compressor 7 to raise pressure and raise temperature, and then enters the nuclear reactor 8 to absorb heat and raise temperature; the low-pressure steam discharged by the steam turbine 1 flows through the evaporator 5 to release heat and cool, then enters the compressor 2 to raise the pressure and heat and enters the condenser 4 to release heat and condense respectively, so as to form the hydrogen energy type multifunctional portable combined cycle steam power device.
The hydrogen energy type multi-energy co-cycle steam power plant shown in fig. 10 is realized by the following steps:
(1) Structurally, the system mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor, a combustion chamber and a second steam turbine; the outside has hydrogen channel to communicate with combustion chamber 9, the outside has oxygen channel to communicate with combustion chamber 9, condenser 4 has condensed water pipeline to communicate with evaporator 5 through booster pump 3, evaporator 5 has steam channel to communicate with second steam turbine 12 again, the second steam turbine 12 has low-pressure steam channel to communicate with evaporator 5, the compressor 2 has steam channel to communicate with combustion chamber 9 through solar energy heat collecting system 6, second compressor 7 and nuclear reactor 8, combustion chamber 9 has steam channel to communicate with steam turbine 1, steam turbine 1 has low-pressure steam channel to communicate with evaporator 5, evaporator 5 has low-pressure steam channel to communicate with compressor 2 and condenser 4 separately, condenser 4 has condensed water pipeline to communicate with outside; the condenser 4 is also provided with a cooling medium passage communicated with the outside, and the steam turbine 1 is connected with the compressor 2 and the second compressor 7 and transmits power.
(2) In flow, compared with the hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 1, the difference is that: the second path of condensed water discharged by the condenser 4 is boosted by the booster pump 3, absorbs heat, warms up and vaporizes by the evaporator 5, is decompressed and works by the second steam turbine 12, and then enters the evaporator 5; the steam discharged by the compressor 2 is subjected to heat absorption and temperature rise through the solar heat collection system 6, is subjected to pressure rise and temperature rise through the second compressor 7, is subjected to gradual heat absorption and temperature rise through the nuclear reactor 8, enters the combustion chamber 9 to be mixed with high-temperature steam, absorbs heat and is subjected to temperature rise, is subjected to pressure reduction through the steam turbine 1 to perform work, and then enters the evaporator 5; the low-pressure steam flows through the evaporator 5 to release heat and cool, and then is divided into two paths, wherein the first path enters the compressor 2 to raise the pressure and the temperature, and the second path enters the condenser 4 to release heat and condense; the work output by the turbine 1 and the second turbine 12 is provided for the compressor 2, the second compressor 7 and the external power, or the work output by the turbine 1 and the second turbine 12 is provided for the compressor 2, the booster pump 3, the second compressor 7 and the external power, so that the hydrogen energy type multifunctional combined cycle steam power device is formed.
The hydrogen energy type multi-energy co-cycle steam power plant shown in fig. 11 is realized by the following steps:
(1) In the hydrogen energy type multifunctional portable combined cycle steam power device shown in fig. 1, a steam channel of a combustion chamber 9 is communicated with a steam turbine 1, and after the combustion chamber 9 is communicated with the steam turbine 1, the steam turbine 1 and a reheat steam channel are communicated with the steam power device through the combustion chamber 9.
(2) In flow, compared with the hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 1, the difference is that: the steam released by the combustion chamber 9 enters the steam turbine 1 to perform decompression and work, enters the combustion chamber 9 to absorb heat and raise temperature after reaching a certain degree, then enters the steam turbine 1 to continue decompression and work, and the low-pressure steam discharged by the steam turbine 1 is provided for the evaporator 5 to form the hydrogen energy type multifunctional combined cycle steam power device.
The hydrogen energy type multi-energy co-cycle steam power plant shown in fig. 12 is realized by the following steps:
(1) In the structure, in the hydrogen energy type multifunctional portable combined cycle steam power device shown in fig. 1, a second booster pump and a low-temperature heat regenerator are added, the condenser 4 is communicated with the booster pump 3, the condenser 4 is communicated with the low-temperature heat regenerator 14 through the second booster pump 13, a steam extraction channel is additionally arranged on the compressor 2 and is communicated with the low-temperature heat regenerator 14, and the low-temperature heat regenerator 14 is communicated with the booster pump 3 through a recondensed water pipeline.
(2) In flow, compared with the hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 1, the difference is that: the second path of condensed water discharged by the condenser 4 flows through a second booster pump 13 to boost pressure and then enters a low-temperature regenerator 14 to be mixed with the extracted steam from the compressor 2, absorbs heat and heats up, and the extracted steam releases heat to form condensed water; condensed water of the low-temperature heat regenerator 14 flows through the booster pump 3 to boost pressure, and then enters the evaporator 5 to absorb heat to raise temperature and vaporize; the low-pressure steam discharged by the steam turbine 1 flows through the evaporator 5 to release heat and cool, and then is divided into two paths, wherein the first path enters the compressor 2 to raise the pressure and raise the temperature, and the second path enters the condenser 4 to release heat and condense; the low-pressure steam enters the compressor 2 for boosting and heating, and is divided into two paths after being boosted to a certain extent, wherein the first path is provided for the low-temperature heat regenerator 14, and the second path is continuously boosted and heated and then enters the solar heat collection system 6, so that the hydrogen energy type multifunctional combined cycle steam power device with the same function is formed.
The hydrogen energy type multi-energy co-cycle steam power plant shown in fig. 13 is realized by the following steps:
(1) In the structure, in the hydrogen energy type multifunctional combined cycle steam power device shown in fig. 1, a newly added evaporator and a newly added diffuser pipe are added, the low-pressure steam channel of the steam turbine 1 is communicated with the evaporator 5 and is adjusted to be communicated with the newly added evaporator A through the evaporator 5, the low-pressure steam channel of the steam turbine 5 is respectively communicated with the compressor 2 and the condenser 4 and is adjusted to be communicated with the newly added evaporator A through the low-pressure steam channel which is respectively communicated with the compressor 2 and the condenser 4, the condenser 4 is communicated with the evaporator 5 through the booster pump 3 and is adjusted to be communicated with the newly added evaporator A through the booster pump 3, and then the newly added evaporator A is further communicated with the evaporator 5 through the newly added diffuser pipe B.
(2) In flow, compared with the hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 1, the difference is that: the second path of condensed water discharged by the condenser 4 is boosted by the booster pump 3, absorbs heat and warms up by the newly added evaporator A, is partially vaporized and is accelerated, is decelerated and boosted by the newly added diffuser pipe B, and then enters the evaporator 5 to absorb heat and vaporize; the low-pressure steam discharged by the steam turbine 1 flows through the evaporator 5 and the newly added evaporator A to release heat and cool gradually, and then enters the compressor 2 to raise the pressure and raise the temperature and enters the condenser 4 to release heat and condense respectively, so that the hydrogen energy type multifunctional portable combined cycle steam power device is formed.
The hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 14 is realized by the following steps:
(1) In the hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 1, an expansion speed increaser 15 is added to replace a steam turbine 1, a dual-energy compressor 16 is added to replace a compressor 2, and a diffuser pipe 17 is added to replace a booster pump 3.
(2) In flow, compared with the hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 1, the difference is that: the second path of condensed water discharged by the condenser 4 flows through a diffusion pipe 17 to be subjected to speed reduction and pressure increase, and enters an evaporator 5 to absorb heat and raise temperature and vaporize; the steam discharged by the evaporator 5 and the dual-energy compressor 16 is subjected to heat absorption and temperature rise through the solar heat collection system 6, and then is supplied to the second compressor 7; the steam discharged by the combustion chamber 9 flows through the expansion speed increaser 15 to be depressurized, work and speed increase, the low-pressure steam discharged by the expansion speed increaser 15 flows through the evaporator 5 to release heat and cool, and then the low-pressure steam is divided into two paths, wherein the first path enters the dual-energy compressor 16 to be pressurized, warmed and slowed, and the second path enters the condenser 4 to release heat and condense; the work output by the expansion speed increaser 15 is provided for the second compressor 7, the dual-energy compressor 16 and external power to form the hydrogen energy type multi-energy combined cycle steam power device.
The hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 15 is realized by the following steps:
(1) In the hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 1, an expansion speed increaser 15 is added to replace a steam turbine 1, a dual-energy compressor 16 is added to replace a compressor 2, a diffuser pipe 17 is added to replace a booster pump 3, and a second dual-energy compressor 18 is added to replace a second compressor 7.
(2) In flow, compared with the hydrogen energy type multi-energy carrying combined cycle steam power plant shown in fig. 1, the difference is that: the second path of condensed water discharged by the condenser 4 flows through a diffuser pipe 17 to be reduced in speed and boosted, and then enters the evaporator 5 to absorb heat and raise temperature and vaporize; steam discharged by the evaporator 5 and the dual-energy compressor 16 is subjected to heat absorption and temperature rise through the solar heat collection system 6, is subjected to pressure rise and temperature rise through the second dual-energy compressor 19 and is slowed down, and then enters the nuclear reactor 8 to be subjected to heat absorption and temperature rise; the steam discharged by the combustion chamber 9 flows through the expansion speed increaser 15 to be depressurized, work and speed increase, the low-pressure steam discharged by the expansion speed increaser 15 flows through the evaporator 5 to release heat and cool, and then the low-pressure steam is divided into two paths, wherein the first path enters the dual-energy compressor 16 to be pressurized, warmed and slowed, and the second path enters the condenser 4 to release heat and condense; the work output by the expansion speed increaser 15 is provided for a double-energy compressor 16, a second double-energy compressor 19 and external power to form a hydrogen energy type multifunctional combined cycle steam power device.
The hydrogen energy type multifunctional combined cycle steam power device provided by the invention has the following effects and advantages:
(1) The hydrogen fuel, nuclear energy and photo-thermal integrated thermal power system is integrated, the thermal power systems of different driving energy sources are integrated into one, the construction cost of the thermal power system is saved, and the cost performance is high.
(2) The cross type, cross grade and gradient carrying are realized among hydrogen fuel, nuclear energy and photo-thermal, and the thermodynamic perfection is high.
(3) The hydrogen fuel, nuclear energy and photo-thermal provide driving heat load links, the temperature difference loss is small, and the thermodynamic perfection is high.
(4) The connection between the photo-thermal energy and the nuclear energy is flexible, the photo-thermal energy plays a larger role by means of the nuclear energy, and the utilization value of the nuclear energy converted into mechanical energy is improved.
(5) The nuclear energy plays a greater role by means of the hydrogen fuel, and the utilization value of the hydrogen fuel converted into mechanical energy is remarkably improved.
(6) The application value of photo-thermal power is exerted at a high level, and the irreversible loss of temperature difference in the process of driving thermal load by nuclear energy is reduced; the application value of nuclear power is exerted at a high level, and the irreversible loss of temperature difference in the process of providing driving heat load by hydrogen fuel is reduced.
(7) The steam is a circulating working medium, the hydrogen is a fuel, and the hydrogen and oxygen burns to produce high-temperature steam which becomes a component part of the circulating working medium; the fuel combustion products are consistent with the circulating working medium in nature, and the separation process of the combustion products is simple.
(8) The driving heat load realizes graded utilization in the single-working-medium combined cycle, obviously reduces irreversible loss of temperature difference, and has high heat-changing work efficiency and thermodynamic perfection.
(9) The photo-thermal can be used for or is beneficial to reducing the pressure boosting ratio of the combined cycle, improving the flow of the circulating working medium and being beneficial to constructing a large-load hydrogen energy type multifunctional combined cycle steam power device; photo-thermal or for increasing the outlet temperature of the second compressor, thereby increasing the grade of the high-temperature heat source and the thermal efficiency of the device.
(10) By utilizing the characteristics of working media, the temperature difference utilization level in the heat transfer process is obviously improved by adopting a simple technical means, and the heat efficiency is improved.
(11) And a plurality of heat regeneration technical means are provided, so that the coordination of the device in the aspects of load, thermal efficiency, step-up ratio and the like is effectively improved.
(12) The structure is simple, the flow is reasonable, and the scheme is rich; the reasonable utilization level of energy is improved, and the expansion of the application range of the hydrogen energy type multi-energy-carrying combined cycle steam power device is facilitated.

Claims (18)

1. The hydrogen energy type multifunctional combined cycle steam power plant mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor and a combustion chamber; the outside is provided with a hydrogen channel which is communicated with a combustion chamber (9), the outside is also provided with an oxygen channel which is communicated with the combustion chamber (9), a condenser (4) is provided with a condensed water pipeline which is communicated with an evaporator (5) through a booster pump (3), then the evaporator (5) is further provided with a steam channel which is communicated with a solar heat collection system (6), a compressor (2) is provided with a steam channel which is communicated with the solar heat collection system (6), the solar heat collection system (6) is also provided with a steam channel which is communicated with the combustion chamber (9) through a second compressor (7) and a nuclear reactor (8), the combustion chamber (9) is also provided with a steam channel which is communicated with a steam turbine (1), the steam turbine (1) is also provided with a low-pressure steam channel which is communicated with the evaporator (5) and then is divided into two paths, namely, the first path is communicated with the compressor (2) and the second path is communicated with the condenser (4), and the condenser (4) is also provided with a condensed water pipe which is communicated with the outside; the condenser (4) is also provided with a cooling medium channel which is communicated with the outside, the steam turbine (1) is connected with the compressor (2) and the second compressor (7) and transmits power to form a hydrogen energy type multifunctional combined cycle steam power device; wherein, or the steam turbine (1) is connected with the compressor (2), the booster pump (3) and the second compressor (7) and transmits power.
2. The hydrogen energy type multifunctional combined cycle steam power device mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor, a combustion chamber and a heat regenerator; the outside is provided with a hydrogen channel which is communicated with a combustion chamber (9), the outside is also provided with an oxygen channel which is communicated with the combustion chamber (9), a condenser (4) is provided with a condensed water pipeline which is communicated with an evaporator (5) through a booster pump (3), the evaporator (5) is further provided with a steam channel which is communicated with a solar heat collection system (6), the compressor (2) is provided with a steam channel which is communicated with the solar heat collection system (6), the solar heat collection system (6) is also provided with a steam channel which is communicated with the combustion chamber (9) through a second compressor (7), a regenerator (10) and a nuclear reactor (8), the combustion chamber (9) is also provided with a steam channel which is communicated with a steam turbine (1), the steam turbine (1) is also provided with a low-pressure steam channel which is communicated with the evaporator (5) through the regenerator (10) and then is divided into two paths, namely a first path which is communicated with the compressor (2) and a second path which is communicated with the condenser (4), and the condenser (4) is also provided with a condensed water pipeline which is communicated with the outside; the condenser (4) is also provided with a cooling medium channel which is communicated with the outside, the steam turbine (1) is connected with the compressor (2) and the second compressor (7) and transmits power to form a hydrogen energy type multifunctional combined cycle steam power device; wherein, or the steam turbine (1) is connected with the compressor (2), the booster pump (3) and the second compressor (7) and transmits power.
3. The hydrogen energy type multifunctional combined cycle steam power device mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor, a combustion chamber and a heat regenerator; the outside is provided with a hydrogen channel which is communicated with a combustion chamber (9), the outside is also provided with an oxygen channel which is communicated with the combustion chamber (9), a condensed water pipeline which is communicated with the evaporator (5) through a booster pump (3), then the evaporator (5) is further provided with a steam channel which is communicated with a solar heat collection system (6), the compressor (2) is provided with a steam channel which is communicated with the solar heat collection system (6), after the solar heat collection system (6) is further provided with a steam channel which is communicated with a second compressor (7), the second compressor (7) is further provided with a steam channel which is communicated with the self through a regenerator (10), the second compressor (7) is further provided with a steam channel which is communicated with the combustion chamber (9) through a nuclear reactor (8), the combustion chamber (9) is further provided with a steam channel which is communicated with a steam turbine (1), and the steam turbine (1) is further provided with a low-pressure steam channel which is divided into two paths after being communicated with the evaporator (5) through a regenerator (10), namely the first path is communicated with the compressor (2) and the second path is communicated with the condenser (4), and the condenser (4) is further provided with a water pipe which is communicated with the outside; the condenser (4) is also provided with a cooling medium channel which is communicated with the outside, the steam turbine (1) is connected with the compressor (2) and the second compressor (7) and transmits power to form a hydrogen energy type multifunctional combined cycle steam power device; wherein, or the steam turbine (1) is connected with the compressor (2), the booster pump (3) and the second compressor (7) and transmits power.
4. The hydrogen energy type multifunctional combined cycle steam power device mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor, a combustion chamber and a heat regenerator; the outside is provided with a hydrogen channel and a combustion chamber (9) which are communicated, the outside is also provided with an oxygen channel and a combustion chamber (9) which are communicated, after the condenser (4) is provided with a condensed water pipeline which is communicated with the evaporator (5) through a booster pump (3), the evaporator (5) is further provided with a steam channel which is communicated with a solar heat collection system (6), the compressor (2) is provided with a steam channel which is communicated with the solar heat collection system (6), the solar heat collection system (6) is also provided with a steam channel which is communicated with the combustion chamber (9) through a regenerator (10), a second compressor (7) and a nuclear reactor (8), the combustion chamber (9) is also provided with a steam channel which is communicated with a steam turbine (1), the steam turbine (1) is also provided with a low-pressure steam channel which is divided into two paths after being communicated with the evaporator (5) through the regenerator (10), namely a first path which is communicated with the compressor (2) and a second path which is communicated with the condenser (4), and the condenser (4) is also provided with a condensed water pipeline which is communicated with the outside; the condenser (4) is also provided with a cooling medium channel which is communicated with the outside, the steam turbine (1) is connected with the compressor (2) and the second compressor (7) and transmits power to form a hydrogen energy type multifunctional combined cycle steam power device; wherein, or the steam turbine (1) is connected with the compressor (2), the booster pump (3) and the second compressor (7) and transmits power.
5. The hydrogen energy type multifunctional combined cycle steam power device mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor, a combustion chamber, a heat regenerator and a second heat regenerator; the outside is provided with a hydrogen channel which is communicated with a combustion chamber (9), the outside is also provided with an oxygen channel which is communicated with the combustion chamber (9), a condenser (4) is provided with a condensed water pipeline which is communicated with an evaporator (5) through a booster pump (3), the evaporator (5) is further provided with a steam channel which is communicated with a solar heat collection system (6), a compressor (2) is provided with a steam channel which is communicated with the solar heat collection system (6), the solar heat collection system (6) is also provided with a steam channel which is communicated with the combustion chamber (9) through a heat regenerator (10), a second compressor (7), a second heat regenerator (11) and a nuclear reactor (8), the combustion chamber (9) is also provided with a steam channel which is communicated with a steam turbine (1), the steam turbine (1) is also provided with a low-pressure steam channel which is communicated with the evaporator (5) through the second heat regenerator (11) and the second heat regenerator (10), and the condenser (4) is also provided with a water pipe which is communicated with the outside; the condenser (4) is also provided with a cooling medium channel which is communicated with the outside, the steam turbine (1) is connected with the compressor (2) and the second compressor (7) and transmits power to form a hydrogen energy type multifunctional combined cycle steam power device; wherein, or the steam turbine (1) is connected with the compressor (2), the booster pump (3) and the second compressor (7) and transmits power.
6. In the hydrogen energy type multifunctional combined cycle steam power plant, any one of claims 2-4 is provided with a low-pressure steam channel communicated with an evaporator (5) through a heat regenerator (10), and the low-pressure steam channel communicated with the evaporator (5) is arranged after the steam channel of the steam turbine (1) is communicated with the steam generator through the heat regenerator (10), so that the hydrogen energy type multifunctional combined cycle steam power plant is formed.
7. In the hydrogen energy type multifunctional co-cycle steam power plant, a low-pressure steam channel of a steam turbine (1) is communicated with an evaporator (5) through a second heat regenerator (11) and a heat regenerator (10), and the low-pressure steam channel of the steam turbine (1) is communicated with the evaporator (5) through the heat regenerator (10) after the steam channel of the steam turbine (1) is communicated with the steam generator through the second heat regenerator (11), so that the hydrogen energy type multifunctional co-cycle steam power plant is formed.
8. The hydrogen energy type multifunctional combined cycle steam power plant mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor and a combustion chamber; the outside is provided with a hydrogen channel which is communicated with a combustion chamber (9), the outside is also provided with an oxygen channel which is communicated with the combustion chamber (9), a condenser (4) is provided with a condensed water pipeline which is communicated with an evaporator (5) through a booster pump (3), then the evaporator (5) is further provided with a steam channel which is communicated with a nuclear reactor (8) through a solar heat collection system (6) and a second compressor (7), the compressor (2) is provided with a steam channel which is communicated with the nuclear reactor (8), the nuclear reactor (8) is also provided with a steam channel which is communicated with the combustion chamber (9), the combustion chamber (9) is also provided with a steam channel which is communicated with a steam turbine (1), the steam turbine (1) is also provided with a low-pressure steam channel which is communicated with the evaporator (5) and then is divided into two paths, namely, the first path is communicated with the compressor (2) and the second path is communicated with the condenser (4), and the condenser (4) is also provided with a condensed water pipeline which is communicated with the outside; the condenser (4) is also provided with a cooling medium channel which is communicated with the outside, the steam turbine (1) is connected with the compressor (2) and the second compressor (7) and transmits power to form a hydrogen energy type multifunctional combined cycle steam power device; wherein, or the steam turbine (1) is connected with the compressor (2), the booster pump (3) and the second compressor (7) and transmits power.
9. The hydrogen energy type multifunctional combined cycle steam power plant mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor and a combustion chamber; the outside is provided with a hydrogen channel which is communicated with a combustion chamber (9), the outside is also provided with an oxygen channel which is communicated with the combustion chamber (9), a condenser (4) is provided with a condensed water pipeline which is communicated with an evaporator (5) through a booster pump (3), then the evaporator (5) is further provided with a steam channel which is communicated with a solar heat collection system (6), the solar heat collection system (6) is also provided with a steam channel which is communicated with a steam turbine (1) through an intermediate port, the compressor (2) is also provided with a steam channel which is communicated with the combustion chamber (9) through the solar heat collection system (6), a second compressor (7) and a nuclear reactor (8), the combustion chamber (9) is also provided with a steam channel which is communicated with the steam turbine (1), the steam turbine (1) is also provided with a low-pressure steam channel which is divided into two paths after being communicated with the evaporator (5), namely a first path which is communicated with the compressor (2) and a second path which is communicated with the condenser (4), and the condenser (4) is also communicated with the outside; the condenser (4) is also provided with a cooling medium channel which is communicated with the outside, the steam turbine (1) is connected with the compressor (2) and the second compressor (7) and transmits power to form a hydrogen energy type multifunctional combined cycle steam power device; wherein, or the steam turbine (1) is connected with the compressor (2), the booster pump (3) and the second compressor (7) and transmits power.
10. The hydrogen energy type multifunctional combined cycle steam power device mainly comprises a steam turbine, a compressor, a booster pump, a condenser, an evaporator, a solar heat collection system, a second compressor, a nuclear reactor, a combustion chamber and a second steam turbine; the outside is provided with a hydrogen channel which is communicated with a combustion chamber (9), the outside is also provided with an oxygen channel which is communicated with the combustion chamber (9), a condenser (4) is provided with a condensed water pipeline which is communicated with the evaporator (5) through a booster pump (3), then the evaporator (5) is further provided with a steam channel which is communicated with a second steam turbine (12), the second steam turbine (12) is also provided with a low-pressure steam channel which is communicated with the evaporator (5), the compressor (2) is provided with a steam channel which is communicated with the combustion chamber (9) through a solar heat collection system (6), a second compressor (7) and a nuclear reactor (8), the combustion chamber (9) is also provided with a steam channel which is communicated with the steam turbine (1), the steam turbine (1) is also provided with a low-pressure steam channel which is communicated with the evaporator (5), the evaporator (5) is also provided with a low-pressure steam channel which is respectively communicated with the compressor (2) and the condenser (4), and the condenser (4) is also provided with a condensed water pipeline which is communicated with the outside; the condenser (4) is also provided with a cooling medium channel which is communicated with the outside, the steam turbine (1) is connected with the compressor (2) and the second compressor (7) and transmits power to form a hydrogen energy type multifunctional combined cycle steam power device; wherein, or the steam turbine (1) is connected with the compressor (2), the booster pump (3) and the second compressor (7) and transmits power.
11. The hydrogen energy type multifunctional combined cycle steam power plant is characterized in that in any one of the hydrogen energy type multifunctional combined cycle steam power plant described in claims 1-10, a steam channel of a combustion chamber (9) is communicated with a steam turbine (1), and the combustion chamber (9) is adjusted to be communicated with the steam turbine (1), and then the steam turbine (1) and a reheat steam channel are communicated with the steam power plant through a nuclear reactor (8), so that the hydrogen energy type multifunctional combined cycle steam power plant with the same function is formed.
12. The hydrogen energy type multifunctional combined cycle steam power plant is characterized in that in any one of the hydrogen energy type multifunctional combined cycle steam power plant described in claims 1-10, a steam channel of a combustion chamber (9) is communicated with a steam turbine (1), and the steam channel of the combustion chamber (9) is adjusted to be communicated with the steam turbine (1), and then the steam turbine (1) and a reheat steam channel are communicated with the steam power plant through the combustion chamber (9), so that the hydrogen energy type multifunctional combined cycle steam power plant is formed.
13. The hydrogen energy type multifunctional combined cycle steam power plant is characterized in that in any one of the hydrogen energy type multifunctional combined cycle steam power plant described in claims 1-10, a steam channel of a combustion chamber (9) is communicated with a steam turbine (1), and the steam channel of the combustion chamber (9) is regulated to be communicated with the steam turbine (1), and then the steam turbine (1) and a reheat steam channel of the combustion chamber are communicated with the combustion chamber (9) through a nuclear reactor (8) and a nuclear reactor to form the hydrogen energy type multifunctional combined cycle steam power plant.
14. A hydrogen energy type multifunctional combined cycle steam power device is characterized in that a second booster pump and a low-temperature heat regenerator are added in any one of the hydrogen energy type multifunctional combined cycle steam power devices in claims 1-13, a condenser (4) is communicated with a condensate water pipeline and a booster pump (3) and is adjusted to be communicated with a low-temperature heat regenerator (14) through the second booster pump (13), a steam extraction channel is additionally arranged in a compressor (2) and is communicated with the low-temperature heat regenerator (14), and a low-temperature heat regenerator (14) is communicated with the condensate water pipeline which is in recooled communication with the booster pump (3) to form the hydrogen energy type multifunctional combined cycle steam power device.
15. In any one of the hydrogen energy type multifunctional combined cycle steam power devices according to the claims 1 and 6, a new evaporator and a new diffusion pipe are added, the low-pressure steam channel of the steam turbine (1) is communicated with the evaporator (5) and is regulated to be communicated with the new evaporator (A) through the evaporator (5), the low-pressure steam channel of the evaporator (5) is respectively communicated with the compressor (2) and the condenser (4) and is regulated to be communicated with the new evaporator (A) through the new diffusion pipe (B), the condensed water pipeline of the condenser (4) is regulated to be communicated with the evaporator (5) through the booster pump (3), and the wet steam channel of the new evaporator (A) is further communicated with the evaporator (5) through the new diffusion pipe (B) after the condensed water pipeline of the condenser (4) is communicated with the new evaporator (A) through the booster pump (3), so as to form the hydrogen energy type multifunctional combined cycle steam power device.
16. In any one of the hydrogen energy type multi-functional co-cycle steam power devices according to claims 2-5 and 7, a new evaporator and a new diffusion pipe are added, the low-pressure steam channel of the regenerator (10) is communicated with the evaporator (5) and is regulated to be communicated with the new evaporator (A) through the evaporator (5), the low-pressure steam channel of the evaporator (5) is respectively communicated with the compressor (2) and the condenser (4) and is regulated to be communicated with the compressor (2) and the condenser (4) through the new diffusion pipe, the condenser (4) is communicated with the evaporator (5) through the booster pump (3), and the new evaporator (A) is regulated to be communicated with the evaporator (5) through the new diffusion pipe (B) after the condenser (4) is communicated with the new evaporator (A) through the booster pump (3), so as to form the hydrogen energy type multi-functional co-cycle steam power device.
17. In the hydrogen energy type multi-energy carrying combined cycle steam power plant, an expansion speed increaser (15) is added to replace a steam turbine (1), a double-energy compressor (16) is added to replace a compressor (2), a diffusion pipe (17) is added to replace a booster pump (3) to form the hydrogen energy type multi-energy carrying combined cycle steam power plant.
18. In the hydrogen energy type multi-energy co-carrying combined cycle steam power plant, an expansion speed increaser (15) is added to replace a steam turbine (1), a dual-energy compressor (16) is added to replace a compressor (2), a diffuser pipe (17) is added to replace a booster pump (3), a second dual-energy compressor (18) is added to replace a second compressor (7) to form the hydrogen energy type multi-energy co-carrying combined cycle steam power plant.
CN202311694568.3A 2022-12-06 2023-12-05 Hydrogen energy type multifunctional combined cycle steam power device Pending CN117759382A (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
CN2022117282457 2022-12-06
CN202211728245 2022-12-06

Publications (1)

Publication Number Publication Date
CN117759382A true CN117759382A (en) 2024-03-26

Family

ID=90315538

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202311694568.3A Pending CN117759382A (en) 2022-12-06 2023-12-05 Hydrogen energy type multifunctional combined cycle steam power device

Country Status (1)

Country Link
CN (1) CN117759382A (en)

Similar Documents

Publication Publication Date Title
CN117759382A (en) Hydrogen energy type multifunctional combined cycle steam power device
CN118008515A (en) Hydrogen energy type multifunctional combined cycle steam power device
CN117869031A (en) Hydrogen energy type multifunctional combined cycle steam power device
CN117759383A (en) Hydrogen energy type multifunctional combined cycle steam power device
CN117803461A (en) Hydrogen energy type multifunctional combined cycle steam power device
CN117759357A (en) Hydrogen energy type multifunctional combined cycle steam power device
CN117759502A (en) Photo-thermal type multifunctional portable combined cycle steam power device
CN117703546A (en) Hydrogen fuel carrying same light and heat combined cycle steam power device
CN117722324A (en) Photo-thermal type multifunctional portable combined cycle steam power device
CN117738857A (en) Photo-thermal type multifunctional portable combined cycle steam power device
CN117869030A (en) Hydrogen energy type multifunctional combined cycle steam power device
CN117846727A (en) Multifunctional combined cycle steam power plant
CN117823253A (en) Multifunctional combined cycle steam power plant
CN117888975A (en) Nuclear energy type multifunctional portable combined cycle steam power device
CN117869240A (en) Photo-thermal type multifunctional portable combined cycle steam power device
CN118008504A (en) Hydrogen energy type multifunctional combined cycle steam power device
CN117780459A (en) Hydrogen energy type multifunctional combined cycle steam power device
CN117722253A (en) Hydrogen energy type multifunctional combined cycle steam power device
CN117823362A (en) Photo-thermal energy-carrying combined cycle power device
CN117823252A (en) Multifunctional combined cycle steam power plant
CN117823254A (en) Nuclear energy type multifunctional portable combined cycle steam power device
CN117988943A (en) Nuclear energy type multifunctional portable combined cycle steam power device
CN117780466A (en) Nuclear energy carrying same-light hot gas-steam combined cycle power device
CN117869023A (en) Nuclear energy type multifunctional portable combined cycle steam power device
CN117759395A (en) Nuclear energy type energy source combined cycle power device with gas and steam

Legal Events

Date Code Title Description
PB01 Publication
PB01 Publication